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将高活性石墨纳米片整合到微球中以增强硅的锂存储性能。

Integrating highly active graphite nanosheets into microspheres for enhanced lithium storage properties of silicon.

作者信息

Li Yan, Wang Dong, Liu Zhichao, Liu Xianzheng, Fu Jie, Zhang Chunjie, Zhang Rui, Wen Guangwu

机构信息

School of Materials Science and Engineering, Shandong University of Technology Zibo 255000 P. R. China

Shangdong Si-Nano Materials Technology Co., Ltd. Zibo 255000 P. R. China.

出版信息

RSC Adv. 2023 Jan 30;13(6):4102-4112. doi: 10.1039/d2ra06977f. eCollection 2023 Jan 24.

Abstract

Integrating silicon (Si) and graphitic carbon into micron-sized composites by spray-drying holds great potential in developing advanced anodes for high-energy-density lithium-ion batteries (LIBs). However, common graphite particles as graphitic carbon are always too large in three-dimensional size, resulting in inhomogeneous hybridization with nanosized Si (NSi); in addition, the rate capability of graphite is poor owing to sluggish intercalation kinetics. Herein, we integrated graphite nanosheets (GNs) with NSi to prepare porous NSi-GN-C microspheres by spray-drying and subsequent calcination with the assistance of glucose. Two-dimensional GNs with average thickness of ∼80 nm demonstrate superior lithium storage capacity, high conductivity, and flexibility, which could improve the electronic transfer kinetics and structural stability. Moreover, the porous structure buffers the volume expansion of Si during the lithiation process. The obtained NSi-GN-C microspheres manifest excellent electrochemical performance, including high initial coulombic efficiency of 85.9%, excellent rate capability of 94.4% capacity retention after 50 repeated high-rate tests, and good cyclic performance for 500 cycles at 1.0 A g. Kinetic analysis and impedance spectra reveal dominant pseudocapacitive behavior with rapid and stable Li insertion/extraction processes. morphology characterization demonstrates the ultra-stable integrated structure of the NSi-GN-C. The highly active GN demonstrates great potential to improve the lithium storage properties of Si, which provides new opportunity for constructing high-performance anodes for LIBs.

摘要

通过喷雾干燥将硅(Si)和石墨碳整合到微米级复合材料中,在开发用于高能量密度锂离子电池(LIBs)的先进阳极方面具有巨大潜力。然而,作为石墨碳的普通石墨颗粒在三维尺寸上总是太大,导致与纳米尺寸的硅(NSi)不均匀杂交;此外,由于嵌入动力学缓慢,石墨的倍率性能较差。在此,我们将石墨纳米片(GNs)与NSi整合,通过喷雾干燥并在葡萄糖的辅助下进行后续煅烧,制备了多孔NSi-GN-C微球。平均厚度约为80nm的二维GNs表现出优异的储锂容量、高导电性和柔韧性,这可以改善电子转移动力学和结构稳定性。此外,多孔结构缓冲了锂化过程中Si的体积膨胀。所获得的NSi-GN-C微球表现出优异的电化学性能,包括85.9%的高初始库仑效率、在50次重复高倍率测试后94.4%的容量保持率的优异倍率性能,以及在1.0 A g下500次循环的良好循环性能。动力学分析和阻抗谱揭示了具有快速和稳定锂嵌入/脱出过程的主导赝电容行为。形态表征证明了NSi-GN-C的超稳定集成结构。高活性的GNs在改善Si的储锂性能方面具有巨大潜力,这为构建高性能LIBs阳极提供了新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87c9/9890553/cb11f130056b/d2ra06977f-f8.jpg

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